Department of Radiology, Fudan University Shanghai Cancer Center; Department of Oncology, Shanghai Medical College, Fudan University, Shanghai, 200032, P. R. China.
Department of Radiology, Zhongshan Hospital, Fudan University and Shanghai Institute of Medical Imaging, Shanghai, 200032, P. R. China.
Biomater Sci. 2022 Mar 15;10(6):1562-1574. doi: 10.1039/d1bm01957k.
With the fast advent of two-dimensional (2D) MXenes, several therapeutic paradigms based on 2D MXenes flourish, but a generic strategy for MXene functionalization to achieve theranostic functionalities and desirable performance is still lacking. In this work, we report a facile and efficient stepwise surface-functionalization strategy to achieve distinct tumor microenvironment (TME)-responsive and magnetic resonance (MR) imaging-guided photothermal breast-cancer hyperthermia in the second near-infrared (NIR-II) biowindow. This approach is based on the stepwise growth of superparamagnetic FeO and paramagnetic MnO nanocomponents onto the large surface of ultrathin 2D niobium carbide (NbC) MXene nanosheets (FeO/MnO-NbC) by making full use of the redox status/chemistry of the 2D MXene surface. Such a surface-nanoparticle engineering strategy endows FeO/MnO-NbC composite nanosheets with a series of properties that include high photothermal-conversion efficiency in the NIR-II biowindow (1064 nm, 30.9%) for effective photothermal tumor eradication without further reoccurrence. It also allows TME-responsive - and -weighted MR imaging and high biocompatibility for guaranteeing further potential clinical transformation. This work not only makes the efficient diagnostic - and -weighted MR imaging-guided photonic hyperthermia of breast cancer possible, but also broadens the biomedical applications of MXene-based nanoplatforms by developing novel surface-engineering strategies to construct 2D NbC MXene-based composite multifunctional nanoplatforms.
随着二维 (2D) MXenes 的快速出现,基于 2D MXenes 的几种治疗范式蓬勃发展,但缺乏通用的 MXene 功能化策略来实现治疗学功能和理想的性能。在这项工作中,我们报告了一种简便有效的分步表面功能化策略,以实现独特的肿瘤微环境 (TME) 响应和磁共振 (MR) 成像引导的光热乳腺癌高热在近红外二区 (NIR-II) 生物窗口。这种方法基于通过充分利用二维 MXene 表面的氧化还原状态/化学,将超顺磁 FeO 和顺磁 MnO 纳米组件分步生长在超薄二维碳化铌 (NbC) MXene 纳米片上(FeO/MnO-NbC)。这种表面纳米粒子工程策略赋予了 FeO/MnO-NbC 复合纳米片一系列特性,包括在 NIR-II 生物窗口中具有高光热转换效率(1064nm,30.9%),可有效消除肿瘤而不会进一步复发。它还允许 TME 响应和 T2 加权磁共振成像以及高生物相容性,以保证进一步的潜在临床转化。这项工作不仅使乳腺癌的高效诊断 T2 加权磁共振成像引导的光热治疗成为可能,而且还通过开发新型表面工程策略来构建基于二维 NbC MXene 的复合多功能纳米平台,拓宽了基于 MXene 的纳米平台的生物医学应用。